MCQEasyJEE 2023Electron Gain Enthalpy & Electronegativity

JEE Chemistry 2023 Question with Solution

The bond dissociation energy is highest for:

  • A

    Cl2\mathrm{Cl_2}

  • B

    I2\mathrm{I_2}

  • C

    Br2\mathrm{Br_2}

  • D

    F2\mathrm{F_2}

Answer

Correct answer:A

Step-by-step solution

Standard Method

Given: The options are Cl2\mathrm{Cl_2}, I2\mathrm{I_2}, Br2\mathrm{Br_2} and F2\mathrm{F_2}.

Find: Which molecule has the highest bond dissociation energy.

Bond dissociation energy is the energy required to break a bond in a molecule.

From the solution, the bond energy order for halogens is:

Cl2>Br2>F2>I2\mathrm{Cl_2 > Br_2 > F_2 > I_2}

Although F2\mathrm{F_2} has a shorter bond length than Cl2\mathrm{Cl_2}, its bond energy is lower because of lone pair-lone pair repulsions.

Thus Cl2\mathrm{Cl_2} has the highest bond dissociation energy.

Therefore, the correct option is A.

Using Bond Length and Repulsion

Given: Compare bond dissociation energies of halogen molecules.

Find: The molecule with maximum bond strength.

In general, shorter bonds tend to have higher bond dissociation energy. However, this trend is not followed perfectly for F2\mathrm{F_2} because strong lone pair-lone pair repulsions weaken the FF\mathrm{F-F} bond.

So the comparative order becomes:

Cl2>Br2>F2>I2\mathrm{Cl_2 > Br_2 > F_2 > I_2}

Hence the molecule with highest bond dissociation energy is Cl2\mathrm{Cl_2}.

Therefore, the correct option is A.

Common mistakes

  • Assuming the shortest bond always has the highest bond dissociation energy. This fails for F2\mathrm{F_2} because lone pair-lone pair repulsions weaken the bond. Check both bond length and electron repulsion.

  • Confusing bond dissociation energy with atomic size trend alone. Larger halogen atoms generally form weaker bonds, but F2\mathrm{F_2} is an exception. Use the known order instead of only size-based reasoning.

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